Skip navigation

DSpace

機構典藏 DSpace 系統致力於保存各式數位資料(如:文字、圖片、PDF)並使其易於取用。

點此認識 DSpace
DSpace logo
English
中文
  • 瀏覽論文
    • 校院系所
    • 出版年
    • 作者
    • 標題
    • 關鍵字
  • 搜尋 TDR
  • 授權 Q&A
    • 我的頁面
    • 接受 E-mail 通知
    • 編輯個人資料
  1. NTU Theses and Dissertations Repository
  2. 理學院
  3. 地質科學系
請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/36742
完整後設資料紀錄
DC 欄位值語言
dc.contributor.advisor鍾孫霖
dc.contributor.authorChiu-Hong Chuen
dc.contributor.author朱秋紅zh_TW
dc.date.accessioned2021-06-13T08:13:43Z-
dc.date.available2005-07-26
dc.date.copyright2005-07-26
dc.date.issued2005
dc.date.submitted2005-07-20
dc.identifier.citation中文部分:
王興麟,1998,沖繩海槽中部海底火山岩之氬氬定年與地球化學研究。國立台灣大學地質科學研究所碩士論文,共141頁。
王國龍,2000,台灣北部及外海晚上新世─第四紀火山岩的地球化學特性與岩石成因。國立台灣大學地質科學研究所博士論文,共169頁。
李寄嵎、蔡榮浩、何孝恒、楊燦堯、鍾孫霖和陳正宏,1997,應用X光螢光分析儀從事岩石樣品之定量分析(I)主要元素。中國地質學會八十六年年會曁學術研討會論文摘要,第418-420頁。
陳正宏,1990,台灣之火成岩。經濟部中央地質調查所,共137頁。
陳正宏、宋聖榮和陳于高,1994,龜山島地質之初步調查報告。龜山島生物資源與地質調查報告書,國立台灣大學植物學系,第21-26頁。
莊文星和陳汝勤,1989,台灣北部火山岩之定年與地球化學研究。經濟部中央地質調查所彙刊,第五號,第31-66頁。
駱宜民,2003,台灣西部井下新生代玄武岩之地球化學特徵與岩石成因。國立台灣大學地質科學研究所碩士論文,共84頁。

英文部分:
Anderson, R.N., Delong, S.E. and Schwarz, W.M., 1980. Dehydration, asthenospheric convection and seismicity in subduction zones. J. Geol., 88, 445-451.
Bryant, C.J., Arculus, R.J. and Eggins, S.M., 2003. The geochemical evolution of the Izu-Bonin arc system: A perspective from tephras recovered by deep-sea drilling. Geochem. Geophys. Geosys.,4 (11), 1094 (doi: 10.1029/2002GC000427).
Chen, C.H., Lee, T., Shien, Y.N., Chen, C.H. and Hsu, W.Y., 1995. Magmatism at the onset of back-arc basin spreading in the Okinawa Trough. J. Volcanol. Geotherm. Res., 69, 313-322.
Chen, Y.G., Wu, W.S., Chen, C.H. and Liu, T.K., 2001. A date for volcanic eruption inferred from a siltstone xenolith. Quat. Sci. Rev., 20, 869-873.
Chung, S.L., Wang, S.L., Shinjo, R., Lee, C.S. and Chen, C.H., 2000. Initiation of arc magmatism in an embryonic continental rifting zone of the southernmost part of Okinawa Trough. Terra Nova., 12, 225-230.
Crawford, A.J., Falloon, T.J. and Green, D.H., 1989. Classification, petrogensis and tectonic setting of boninites. In: Boninites and Related Rocks (Crawford, A.J., ed.), Unwin and Hyman, London, 1-49.
Dupre, B. and Allegre, C.J., 1983. Pb-Sr isotope variation in Indian Ocean basalts and mixing phenomena. Nature, 303, 142-146.
Eggins, S.M., Woodhead, J.D., Kinsley, L.P.J., Mortimer, G.E., Sylvester, P., McCulloch, M.T., Hergt, J.M. and Handler, M.R., 1997. A simple method for the precise determination of ≧ 40 trace elements in geological samples by ICPMS using enriched isotope internal standardization. Chem. Geol., 134, 311-326.
Furukawa, Y. and Tatsumi, Y., 1999. Melting of a subducting slab and production of high-Mg andesite magmas: Unusual magmatism in SW Japan at 13-15 Ma. Geophys. Res. Lett., 26, 2271-2274.
Galer, S.J.G. and Abouchami, W., 1998. Practical application of lead triple spiking for correction of instrumental mass discrimination. Mineral Mag., 62A, 463-492.
Gerstenberger, H. and Haase, G., 1997. A highly effective emitter substance for mass spectrometeric Pb isotope ratio determination. Chem. Geol., 136, 309-312.
Geostandards Newsletter, 1994. v.18 Special issue.
Gill, J.B., 1981. Orogenic Andesites and Plate Tectonics, Springer-Verlag, Berlin, 390pp.
Goldstein, S.L., O'Nions, R.K. and Hamilton, P.J., 1984. A Sm-Nd study of atmospheric dusts and particulates from major river systems. Earth Planet. Sci. Lett., 70, 221-236.
Green, D.H., 1982. Anatexis of mafic crust and high pressure crystallization of andesite. In Andesites (Thorpe, R.S., ed.), Wiley, New York, 465-487.
Grove, T.L., Gerlach, D.C. and Sando, T.W., 1982. Origin of cala-alkaline series lavas at Medicine Lake Volcano by fractionation, assimilation and mixing. Contrib. Mineral. Petrol., 80, 160-182.
Grove, T.L., Parman, S.W., Bowring, S.A., Price, R.C. and Baker, M.B., 2002. The role of an H2O-fluid component in the generation of primitive basaltic andesites and andesites from the Mt. Shasta region, N California. Contrib. Mineral. Petrol., 142, 375-396.
Hall, R., 2002. Cenozoic geological and plate tectonic evolution of SE Asia and SW Pacific: computer-based reconstructions, models and animation. J. Asian Earth Sci., 20, 353-431.
Hanyu, T. and Tatsumi, Y., 2002. A contribution of slab-melts to the formation of high-Mg andesite magmas; Hf isotope evidence from SW Japan. Geophys. Res.Lett., 29 (22), 2051 (doi: 10.1029/2002GL015856).
Hart, S.R., 1984. A large isotope anomaly in the Southern Hemisphere mantle. Nature, 309, 753-757.
Hawkesworth, C., Turner, S., Peate, D., McDermott, F. and Calsteren, P., 1997. Element U and Th variartion in island arc rocks: implications for U-series isotopes. Chem. Geol., 139, 207-221.
Hickey-Vargas, R., 1991. Isotope characteristics of submarine lavas from the Philippine Sea: implications for the origin of arc and basin magmas of the Philippine tectonic plate. Earth Planet. Sci. Lett., 107, 290-304.
Hirose, K., 1997. Melting experiments on lherzolite KLB-1 under hydrous conditions and generation of high-magnesian andesitic melts. Geology, 25, 42-44.
Hokakubo, S., 2003. Petrological and geochemical characteristics of volcanic rocks from southern Okinawa Trough: Implications for its tectonic development. Master degree thesis, Institute of Physics And Earth Sciences, Univ. of Ryukyus, 41pp.
Hsu, L.C., 1963. Petrology of the Pleistocene andesite from Kueishantao, Northern Taiwan. Acta Geol. Taiwanica, 10, 29-40.
Hsu, S.K., 2001. Lithospheric structure, buoyancy and coupling across the southernmost Ryukyu subduction zone: an example of decreasing plate coupling. Earth Planet. Sci. Lett., 186, 471-478.
Irvine, T.N. and Baragar, W.R.A., 1971. A guide to the chemical classification of the common volcanic rocks. Can. J. Earth Sci., 8, 523-548.
Kao, H. and Rau, R.J., 1999. Detailed structures of the subducted Philippine Sea Plate beneath Taiwan: A new type of double seismic zones. J. Geophys. Res., 104, 1015-1033.
Kao, H., Shen, S.J. and Ma, K.F., 1998. Transition from oblique subduction to collision: Earthquakes in the southernmost Ryukyu arc-Taiwan region. J. Geophys. Res., 103B4, 7211-7229.
Kay, R.W., 1978. Aleutian magnesian andesites; melts from subducted Pacific Ocean srust. J. Volcanol. Geotherm. Res., 4, 117-132.
Kelemen, P.B., 1995. Genesis of high Mg# andesites and the continental crust. Contrib. Mineral. Petrol., 120, 1-19.
Kushiro, I., 1969. The system forsterite-diopside-silica with and without water at high pressures. Am. J. Sci., 267A, 269-294.
Le Maitre, R.W., Bateman, P., Dudek, A., Keller, J., Lameyre Le Bas, M.J., Sabine, P.A., Schmid, R., Sorensen, H., Streckeisen, A., Woollley, A.R. and Zanettin, B., 1989. A classification of igneous rocks and glossary of terms. Blackwell, Oxford.
Lin, J.Y., Hsu, S.K. and Sibuet, J.-C., 2004. Melting features along the western Ryukyu slab edge (northeast Taiwan): Tomographic evidence. J. Geophys. Res., 109 B12402 (doi: 10.1029/2004JB003260)
Macpherson, C.G. and Hall, R., 2001. Tectonic setting of Eocene boninite magmatism in the Izu-Bonin-Mariana forearc. Earth Planet. Sci. Lett., 186, 215-230.
Martin, H., 1999. Adakitic magma: modern analogues of Archaean granitoids. Lithos, 46, 411-429.
Millot, R., Allegre, C-J., Gaillardet, J. and Roy, S., 2004. Lead isotopic systematics of major river sediments: a new estimate of the Pb isotopic composition of the Upper Continental Crust. Chem. Geol., 203, 75-90.
Rapp, R.P. and Watson, E.B., 1995. Dehydration melting of metabasalt at 8-32 kbar: Implications for continental growth and crust-mantle recycling. J. Petrol., 36, 891-931.
Rickwood, P.C., 1989. Boundary lines within petrologic diagrams which use oxides of major and minor elements. Lithos, 22, 247-263.
Roeder, P.L. and Emslie, R.F., 1970. Olivine liquid equilibrium. Contrib. Mineral Petrol., 29, 275-289.
Rudnick, R.L. and Fountain, D.M., 1995. Nature and composition of the continental crust: A lower crustal perspective. Rev. Geophys., 33, 267-309.
Schmidt, M.W. and Stefano, P., 1998. Experimentally based water budgets for dehydrating slabs and consequences for arc magma generation. Earth Planet. Sci. Lett., 163, 361-379.
Seno, T., Stein, S. and Gripp, A.E., 1993. A model for the motion of the Philippine Sea Plate consistent with NUVEL-1 and geological data. J. Geophys. Res., 98, 17941-17948.
Shimoda, G., Tatsumi, Y., Nohda, S., Ishizaka, K. and Jahn, B.M., 1998. Setouchi high-Mg andesites revisited: geochemical evidence for melting of subducting sediments. Earth Planet. Sci. Lett., 160, 479-492.
Shinjo, R., 1999. Geochemical of high Mg andesites reflects the tectonic evolution of the Okinawa Trough-Ryukyu arc system. Chem. Geol., 157, 69-88.
Shinjo, R., Woodhead, J.D. and Hergt, J.M., 2000. Geochemical variation within the northern Ryukyu Arc: magma source compositions and geodynamic implications. Contrib. Mineral Petrol., 140, 263-282.
Shinjo, R., Chung, S.L., Kato, Y. and Kimura, M., 1999. Geochemical and Sr-Nd isotopic characteristics of volcanic rocks from the Okinawa Trough and Ryukyu arc: Implications for the evolution of a young, intra-continental backarc basin. J. Geophys. Res., 104, 10591-10608.
Sibuet, J.-C. and Hsu, S.K., 2004. How was Taiwan created? Tectonophysics, 379, 159-181.
Sibuet, J.-C., Hsu, S.K., Shyu, C.T. and Liu, C.S., 1995. Structural and kinematic evolutions of the Okinawa Trough backarc basin. In: Backarc Basins: Tectonics and Magmatism (Taylor, B. ed.), Plenum, New York, 343-379.
Sibuet, J.-C., Deffontaines, B., Hsu, S.K., Thareau, N., Le Formal, J.-P., Liu, C.S and the ACT party, 1998. The Okinawa Trough backarc basin: Early tectonic and magmatic evolution. J. Geophys. Res., 103, 30245-30267.
Stern, R.J., 2002. Subduction zones. Rev. Geophys., 40 (4), 1012 (doi: 10.1029/2001RG000108).
Stern, R.J., Fouch, M.J., and Klemperer, S., 2004. An overview of the Izu-Bonin-Mariana subduction factory. In: the Subduction Factory (Eiler, J. ed.), Geophys. Monogr., 138, 175–223.
Sun, S.-S., 1980. Lead isotopic study of young volcanic rocks from mid-ocean ridges, ocean islands and island arcs. Phil. Trans. R. Soc. Lond, 297, 409-445.
Sun, S.-S. and McDonough, W.F., 1989. Chemical and isotopic systematics of oceanic basalts: Implications for mantle composition and processes. In: Magmatism in the ocean basins (Saunders, A.D. and Norry, M.J. eds.). Spec. Publ. Geol. Soc. London, 42, 313-345.
Suzuki, K. and Tatsumi, Y., 2003. Re–Os systematics of high-Mg andesites and basalts in the Setouchi volcanic belt, SW Japan: implications for mantle–melt interaction. Frontier Research on Earth Evolution 1.
Tatsumi, Y., 2000. Continental crust formation by crustal delamination in subduction zones and complementary accumulation of the enriched mantle I component in the mantle. Geochem. Geophys. Geosys., 1, Paper number 2000GC000094.
Tatsumi, Y., 2001. Geochemical modeling of partial melting of subducting sediments and subsequent melt-mantle interaction: Generation of high-Mg andesites in the Setouchi volcanic belt, southwest Japan. Geology, 29, 323-326.
Tatsumi, Y. and Maruyama, S., 1989. Boninites and high-Mg andesites; tectonics and petrogensis. In: Boninites (Crawford, A.J. ed.), Chapman and Hall, New York, 50-71.
Tatsumi, Y. and Eggins, S., 1995. Subduction Zone Magmatism. Blackwell Sci. Publ., Cambridge, 211pp.
Tatsumi, Y. and Hanyu, T., 2003. Geochemical modeling of dehydration and partial melting of subducting lithosphere: toward a comprehensive understanding of high-Mg andesite formation in the Setouchi volcanic belt, SW Japan. Geochem. Geophys. Geosys., 4 (9), 1081 (doi: 10.1029/2003GC000530).
Tatsumi, Y., Shukuno, H., Sato, K. and Shibata, T., 2003. The petrology and geochemistry of high-magnesium andesites at the western tip of the Setouchi volcanic belt, SW Japan. J. Petrol., 44, 1561-1578.
Taylor, R.N., Nesbitt, R.W., Vidal, P., Harmon, R.S., Auvray, B. and Croudace, I.W., 1994. Mineralogy, chemistry, and genesis of the Boninite series volcanics, Chichijima, Bonin islands, Japan. J. Petrol., 35, 577-617.
Thirlwall, M.F., 2000. Inter-laboratory and other errors in Pb isotope analyses investigated using a 207Pb-204Pb double spike. Chem. Geol., 163, 299-322.
Trumbull, R.B., Wittenbrink, R., Hahne, K., Emmermann, R., Busch, W., Gerstenberger, H. and Sieble, W., 1999. Evidence for Late Miocene to recent contamination of arc andesites by crustal in the Chilean Andes (25-26°S) and its geodynamic implication. J. South American Earth Sci., 12, 135-155.
Wang, K.L., Chung, S.L., Sinjo, R., Chen, C.H., Yang, T.F. and Chen, C.H., 1999. Post collisional magmatism around northern Taiwan and its relation with opening of the Okinawa Trough. Tectonophysics, 308, 363-376.
Wang, K.L., Chung, S.L., O’Reilly, S.Y., Sun, S.S., Shinjo, R. and Chen, C.H., 2004. Geochemical constraints for the genesis of post-collisional magmatism and the geodynamic evolution of the northern Taiwan region. J. Petrol., 45, 975-1011.
White, W.M., Hofmann, A.W. and Puchlt, H., 1987. Isotope geochemistry of Pacific mid-ocean ridge basalt. J. Geophys. Res., 92, 4881-4893.
Workman, R.K. and Hart, S.R., 2005. Major and trace element composition of the depleted MORB mantle (DMM). Earth Planet. Sci. Lett., 231, 53-72.
Wyllie, P.J., 1971. The role of water in magma genesis and initiation of diapiric uprise in the mantle. J. Geophys. Res., 76, 1328-1338.
Yogodzinski, G.M., Volynets, V.V., Koloskov, A.V., Seliverstov, N.I. and Matvenkov, V.V., 1994. Magnesian andesites and the subduction component in a strongly calc-alkaline series at Piip Volcano, far western Aleutians. J. Petrol., 35, 163-204.
Yogodzinski, G.M., Lees, J.M., Churikova, T.G., Dorendorf, F., Woerner, G. and Volynets, O.N., 2001. Geochemical evidence for the melting of subducting oceanic lithosphere at plate edges. Nature, 409, 500-504.

Yu, S.B., Kuo, L.C., Hsu, Y.J., Su, H.H., Liu, C.C., Hou, C.S., Lee, J.F., Lai, T.C., Liu, C.C., Liu, C.L., Tseng, T.F., Tsai, C.S. and Shin, T.C., 2001. Preseismic deformation and coseismic displacement associated with the 1999 Chi-Chi, Taiwan earthquake. Bulletin of the Seismological Society of America, 91, 995-1012.
dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/36742-
dc.description.abstract菲律賓海板塊以每年大約七公分的速度向西北方隱沒至歐亞大陸板塊下方,形成了琉球島弧及沖繩海槽弧後盆地,根據Chung et al. (2000) 的研究,沖繩海槽最南部分 (Southernmost Part of Okinawa Trough, SPOT) 不是一般認定的單純的弧後盆地,因此有島弧火山噴發所造成的龜山島座落其中。過去傳統上將龜山島火山岩歸類為典型的島弧鈣鹼系列安山岩 (SiO2 ≈ 60 wt.%) ,但本研究顯示若干岩樣的鎂含量較高 (MgO ≥ 5 wt.%) ,可視為高鎂安山岩,本研究中擬利用詳細的地球化學資料結合地球物理證據,探討此種岩石的成因。在微量元素組成上,龜山島高鎂安山岩具有富集的大離子岩石圈 (Cs,Rb,Ba) 、釷、鈾及鉛等元素,以及虧損的高場力鍵結元素 (Nb,Ta,Ti) ,與世界其他地區的島弧岩漿顯示相似的特性;此外,它們的主量和微量元素成份和Rudnick and Fountain (1995) 所提出的平均大陸地殼的組成近乎相同。在同位素組成上,龜山島高鎂安山岩具有低的釹同位素 (εNd ≈ –4.3 〜 –5.0)、高的鍶同位素 (87Sr/86Sr ≈ 0.706) 及鉛同位素比值 (206Pb/204Pb ≈ 18.76, 207Pb/204Pb ≈ 15.69, 208Pb/204Pb ≈ 39.06),似乎反映了明顯的大陸地殼訊號。然而,歸納以上所有地球化學資料,本研究發現龜山島高鎂安山岩無法利用傳統上認為的基性岩漿的結晶分異加上地殼混染 (AFC) 模式解釋,而更可能是由隱沒的菲律賓海洋板塊加上沉積物熔融所形成。地球化學模擬計算結果顯示的岩漿成因過程為:隱沒的沉積物及海板塊分別發生部份熔融,這兩種岩漿以大約1:1的比率混合後,再與地幔楔以9:1的比率發生岩漿─地幔楔交互作用,即可造成龜山島高鎂安山岩。這樣的岩漿成因模式需要一個特殊的熱源,可能與SPOT的地體環境有關;而地震層析成像研究報導,在本地區隱沒帶的四十公里深處有一個明顯的低速區,與本研究所推測的部份熔融作用吻合。zh_TW
dc.description.abstractKueishantao is an emerged volcanic islet located at the western end of the Southernmost Part of Okinawa Trough (SPOT). The Okinawa Trough, extending from SW Kyushu, Japan to NE Taiwan, is widely regarded as a backarc basin that is built behind the Ryukyu arc-trench system owing to subduction of the Philippine Sea plate underneath the Eurasian plate. The SPOT, however, is not a simple backarc basin but an embryonic rift zone in which early arc volcanism occurs as a result of the Ryukyu subduction. The Kueishantao is one of such volcanoes thus formed in the SPOT and consists mainly of andesitic lava flows dated to be ~7000 yr old. In this study, we report whole rock major and trace element, and Sr-Nd-Pb isotope compositions of the Kueishantao andesites. The results indicate that some of the samples have unexpectedly high magnesium, with MgO ≥ 5 wt.% and Mg# > 0.5, relative to their silica contents (SiO2 ≈ 60 wt.%), which allow them to be coined as high-Mg andesites (HMAs). In the incompatible element variation diagram, these Kueishantao HMAs exhibit enrichments in the large ion lithophile elements and Th, U and Pb, and depletions in the high field strength elements, features typical of arc lavas from the Ryukyu subduction zone as well as convergent margins worldwide. More interestingly, their overall geochemical compositions are very similar to those of the mean continental crust proposed by Rudnick and Fountain (1995). The Kueishantao HMAs have uniform isotope compositions, with low εNd (–4.3 to –5.0), high Sr (87Sr/86Sr ≈ 0.706) and Pb (18.76, 15.69 and 39.06 of 206Pb/204Pb, 207Pb/204Pb and 208Pb/204Pb, respectively) ratios. Such “continental” isotopic signatures have led previous workers to argue significant crustal contamination during magma ascent as a major petrogenetic process, but our evaluation shows that this simple binary mixing model fails to explain their geochemical and Pb isotope systematics. We propose, instead, that the Kueishantao HMAs result from partial melting of the altered Philippime sea crust and overlying subducting sediments, followed by a melt-mantle wedge interaction. This interpretation is in consistency with seismic tomographic data beneath the SPOT area characterized by a complex collision/extension/subduction tectonic context off NE Taiwan.en
dc.description.provenanceMade available in DSpace on 2021-06-13T08:13:43Z (GMT). No. of bitstreams: 1
ntu-94-R92224201-1.pdf: 3926194 bytes, checksum: aef5ddfe160af5cd58a4141a3000595f (MD5)
Previous issue date: 2005
en
dc.description.tableofcontents摘要……………………………………………………………………….I
目錄………………………………………………………………………II
表目……………………………………………………………………...VI
圖目……………………………………………………………………..VII
第一章 緒論……………………………………………………………..1
1.1 相關研究背景……………………………………………….....1
1.1.1 區域背景………………………………………………..1
1.1.2 龜山島火山岩之前人研究……………………………..2
1.2 研究動機及目的……………………………………………….6
1.2.1 研究動機………………………………………………..6
1.2.2 研究目的………………………………………………..7
1.3 高鎂安山岩之介紹…………………………………………….8
1.3.1 玻安岩…………………………………………………..9
1.3.2 埃達克岩……………………………………………….11
1.3.3 瀨戶內高鎂安山……………………………………….13
第二章 研究方法……………………………………………………….15
2.1 龜山島火山岩及河口沉積物標本位置………………………15
2.2 顯微鏡岩象觀察………………………………………………18
2.3 主量元素含量分析……………………………………………18
2.4 微量元素含量分析……………………………………………18
2.4.1 微量元素測量之標本處理…………………………….19
2.4.2 以ICP─MS測量USGS標準樣結果………………...20
2.5 鍶─釹同位素組成分析………............................................…21
2.5.1 標本前置處理………………………………………….24
2.5.2 鍶─釹同位素化學分離流程………………………….24
2.6 鉛同位素組成分析…………………………………………….28
2.6.1 標本前置處理…………………………………………...28
2.6.2 鉛同位素化學分離流程………………………………...28
第三章 分析結果及地球化學特徵……………………………………...30
3.1 龜山島火山岩岩象觀察結果…………………………………..30
3.2 礦物化學………………………………………………………..30
3.3 主量元素含量分析結果………………………………………..31
3.3.1 龜山島火山岩…………………………………………...31
3.3.2 河口沉積物……………………………………………...32
3.4 微量元素含量分析結果………………………………………..39
3.4.1 龜山島火山岩…………………………………………...39
3.4.2 河口沉積物……………………………………………...40
3.5 鍶─釹同位素組成結果………………………………………..47
3.5.1 龜山島火山岩…………………………………………...47
3.5.2 河口沉積物……………………………………………...47
3.6 鉛同位素組成結果……………………………………………..50
3.6.1 龜山島火山岩…………………………………………...51
3.6.2 河口沉積物……………………………………………...51
第四章 龜山島安山岩的成因…………………………………………...54
4.1 龜山島安山岩之地球化學特性………………………………..54
4.2 龜山島與各類型高鎂安山岩的比較…………………………..56
4.2.1 礦物組成…………………………………………...........56
4.2.2 主量元素…………………………………………...........58
4.2.3 微量元素…………………………………………...........59
4.2.4 鍶─釹同位素……………………………………...........61
4.2.5 鉛同位素…………………………………………...........63
4.2.6 琉球島弧系統內的高鎂安山岩…………………...........65
4.3 龜山島安山岩的岩漿成因……………………………………..67
4.3.1 隱沒組分及其影響……………………………………...67
4.3.2 岩漿形成模式計算……………………………………...70
4.3.3熱源機制討論及地震層析成像分析……………………82
第五章 結論……………………………………………………………...87
致謝……………………………………………………………………….89
參考文獻………………………………………………………………….91
圖版……………………………………………………………………….99
dc.language.isozh-TW
dc.title龜山島高鎂安山岩之岩漿成因zh_TW
dc.titleGeneration of high-Mg andesites in the Kueishantao volcano, the southernmost part of the Okinawa Troughen
dc.typeThesis
dc.date.schoolyear93-2
dc.description.degree碩士
dc.contributor.oralexamcommittee陳正宏,陳中華,藍晶瑩
dc.subject.keyword龜山島,高鎂安山岩,鉛同位素,隱沒沉積物,蝕變海洋地殼,地幔楔,zh_TW
dc.subject.keywordKueishantao,high-Mg andesites,Pb isotope,subducted sediments,altered Philippime sea crust,mantle wedge,en
dc.relation.page99
dc.rights.note有償授權
dc.date.accepted2005-07-20
dc.contributor.author-college理學院zh_TW
dc.contributor.author-dept地質科學研究所zh_TW
顯示於系所單位:地質科學系

文件中的檔案:
檔案 大小格式 
ntu-94-1.pdf
  目前未授權公開取用
3.83 MBAdobe PDF
顯示文件簡單紀錄


系統中的文件,除了特別指名其著作權條款之外,均受到著作權保護,並且保留所有的權利。

社群連結
聯絡資訊
10617臺北市大安區羅斯福路四段1號
No.1 Sec.4, Roosevelt Rd., Taipei, Taiwan, R.O.C. 106
Tel: (02)33662353
Email: ntuetds@ntu.edu.tw
意見箱
相關連結
館藏目錄
國內圖書館整合查詢 MetaCat
臺大學術典藏 NTU Scholars
臺大圖書館數位典藏館
本站聲明
© NTU Library All Rights Reserved